EP2322207A2 - Oxygen-transferring blood substitute and a pharmaceutical composition (variants) - Google Patents

Oxygen-transferring blood substitute and a pharmaceutical composition (variants) Download PDF

Info

Publication number
EP2322207A2
EP2322207A2 EP09723300A EP09723300A EP2322207A2 EP 2322207 A2 EP2322207 A2 EP 2322207A2 EP 09723300 A EP09723300 A EP 09723300A EP 09723300 A EP09723300 A EP 09723300A EP 2322207 A2 EP2322207 A2 EP 2322207A2
Authority
EP
European Patent Office
Prior art keywords
blood substitute
blood
solution
hemoglobin
pharmaceutical composition
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP09723300A
Other languages
German (de)
French (fr)
Other versions
EP2322207A4 (en
Inventor
Anna Yakovlevna Goncharova
Vladimir Konstantinovich Podgorodnichenko
Rakhimdzhan Akhmetdzhanovich Roziev
Viktor Vladimirovich Homichenok
Anatoliy Fedorovich Tsyb
Olga Borisovna Bruskova
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nauchno Proizvodstennaya Kompaniya "MEDBIOFARM"
Original Assignee
Nauchno Proizvodstennaya Kompaniya "MEDBIOFARM"
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Nauchno Proizvodstennaya Kompaniya "MEDBIOFARM" filed Critical Nauchno Proizvodstennaya Kompaniya "MEDBIOFARM"
Publication of EP2322207A2 publication Critical patent/EP2322207A2/en
Publication of EP2322207A4 publication Critical patent/EP2322207A4/en
Withdrawn legal-status Critical Current

Links

Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K38/00Medicinal preparations containing peptides
    • A61K38/16Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • A61K38/41Porphyrin- or corrin-ring-containing peptides
    • A61K38/42Haemoglobins; Myoglobins
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/0012Galenical forms characterised by the site of application
    • A61K9/0019Injectable compositions; Intramuscular, intravenous, arterial, subcutaneous administration; Compositions to be administered through the skin in an invasive manner
    • A61K9/0026Blood substitute; Oxygen transporting formulations; Plasma extender
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P7/00Drugs for disorders of the blood or the extracellular fluid

Definitions

  • the present invention relates to medicine, namely blood substitutes based on polyhemoglobin.
  • the invention can be used for the production of blood-substituting solutions comparable to the efficiency of gas transport (transport of oxygen) with erythrocytes of human blood.
  • the main drawback of the known blood substitute is its relatively high cost, which is due to the fact that the blood substitute for use expensive biologically active agent - pyridoxal-b-phosphate (PF). There is also a danger of incidence of free-PF in the final product, which can lead to undesirable consequences.
  • PF biologically active agent - pyridoxal-b-phosphate
  • the disadvantages also include the fact that the blood substitute has a large percentage of hemoglobin tetramer, which dissociates in the blood into dimers which have a nephrotoxic effect.
  • the tetramer also causes vasoconstrictor effect by binding nitric oxide, and in addition, the tetramer is rapidly eliminated from the blood stream without being able to perform the gas-transport function.
  • the blood substitute according to patent RU 2203087 derived from donated blood, is also well-known.
  • This blood substitute is an aqueous solution piridoxilated, polymerized hemoglobin, which contains approximately 16% hemoglobin polymer with a molecular mass of approximately 128, approximately 26% hemoglobin polymer with a molecular mass of approximately 192, and approximately 58% hemoglobin polymer with a molecular weight of about 256.
  • This blood substitute is prepared using carbon monoxide, which increases the cost and lengthens the process; moreover, there is an admixture of the toxic carboxyhemoglobin (up to 1.5%) in the final product.
  • the described technology allows for the use of blood of other mammals, as confirmed by the authors.
  • the hemoglobin-based blood substitute made by the biopure company including hemoglobin from the red blood cells of cattle, Patents US 5,084,558 (1992 ) and US 6,506,725 (2003 ), is also well-known.
  • This blood substitute has the following parameters: distribution of the molecular weight of the polyhemoglobin is in the range of 68,000 - 500,000 daltons, more than 90%, with the polyhemoglobin content more than 50%, methemoglobin content of less than 20%, and endotoxin content of less than 0.02 units/ml.
  • the disadvantages of this blood substitute are high levels of tetramer and methemoglobin.
  • the high tetramer content has a nephrotoxic effect and methemoglobin is toxic.
  • the blood substitute is prepared using degassed solution, and therefore when introduced into the organism in conditions of hemorrhagic shock, can bind to dissolved oxygen in the blood, causing additional hypoxia.
  • Biopure's product is a ready-to-use product with a fixed concentration of hemoglobin in a defined medium (modified lactated Ringer - Locke solution).
  • modified lactated Ringer - Locke solution modified lactated Ringer - Locke solution
  • the present invention is to create a blood substitute devoid of these shortcomings.
  • a blood substitute with oxygen transport function and based on polymerized glutaraldehyde hemoglobin derived from animal blood is proposed.
  • a distinctive feature of the proposed blood substitute is that the molecular weight distribution of 90% of the polyhemoglobin is in the range of 192,000 - 320,000 Da and the methemoglobin content is less than 5%.
  • the blood substitute is proposed to be made in the form of a dry substance, such as a powder or granules, with a moisture content of no more than 7%.
  • the proposed blood substitute may also contain glucose and/or ascorbic acid.
  • the distribution of molecular weight of 90% of polyhemoglobin in the range of 192,000 - 320,000 Da and methemoglobin content less than 5% improve the quality of the blood substitute by eliminating unwanted side effects. It is known that polymerized hemoglobin has less cooperative effect than native hemoglobin, which reduces the Hill coefficient /Preparation and integral vitro characteristics of polymerized pyridoxylated hemoglobin, L.R. Sehgalet al., TRANSFUSION, Vol. 23, No. 2-1983, p. 158 - 162 /. This effect is possibly due to steric hindrance to access of oxygen to the heme.
  • the distribution of molecular weight in the specified range can bring gas transport properties of the claimed blood substitute closer to that of native hemoglobin due to the greater access of heme to oxygen.
  • Making blood substitute in the form of dry substance increases its shelf life and strengthens its anti-shock effect. In addition, it expands the set of specific therapeutic effects through the ability to dissolve it in one of the accompanying plasma substitute solutions.
  • the choice of solution is determined by the cause that led to the need to transfuse blood substitute, the condition of the patient, and the nature of the proposed therapy (treatment process).
  • the blood substitute is prepared using osmotic hemolysis of the red blood cells of cattle. Therefore, the erythrocytic mass derived from the stabilized cow's blood by separation, is subjected to hemolysis with water for injection. Stroma (erythrocyte membrane) is separated by microfiltration using filters with pore diameters of 50, 20, 10, 5, and 1 microns. The filtrate is treated with concentrated sodium chloride solution for planting non-heme proteins. The solution is again filtered through filters with pore diameters of 5, 1, and 0.65 microns and subjected to the process of ultrafiltration with 300 kDa cut-off membranes, and sterilizing filtration is performed.
  • Stroma erythrocyte membrane
  • the concentration of native hemoglobin and of the products of its chemical modification is determined spectrophotometrically by using a cyanmethemoglobin derivative at a wavelength of 540 Nm / M.S. Kushakovsky / Clinical forms of damage to the hemoglobin, Leningrad: Medicine, 1968. - p. 23 /.
  • Reagent grade sodium chloride ("chemically pure," GOST 42-2572-88), glucose (FS 42-2419-86), ascorbic acid (HF X, S - 6), and isotonic solution (GF Xl, First edition, p. 175) are used.
  • reaction is completed by adding an aqueous solution of sodium borohydride (pH 8-9).
  • the polyhemoglobin solution is subjected to ultrafiltration on cut-off membranes of 450 kDa, and then for concentration and diafiltration washing, it is applied to the membranes filtering out polymers that are less than 150 kDa.
  • the polyhemoglobin solution is washed with diafiltration to remove the tetramer and low molecular weight compounds, and then it is concentrated up to 10% polyhemoglobin and stored for drying.
  • the quality of the preparation in terms of compliance with the fractional composition of polyhemoglobin is controlled through electrophoresis and gel-permeation chromatography.
  • polyoxidin containing 1.5% solution of polyethylene glycol, with a molecular mass of 20 kDa in 0.9% sodium chloride solution with the addition of potassium iodide, is proposed as a solvent for the claimed blood substitute.
  • Polyoxidin has an anti-shock effect, as well as the ability to cause autohemodilution and retain fluid in the bloodstream. Polyoxidin restores capillary blood flow with its disaggregating effect.
  • Hemodez a 6% solution of polyvinylpyrrolidone with a molecular mass of 12.6 kDa, with the addition of salts balanced by ionic composition, is proposed to be used as a detoxication preparation.
  • Ringer's solution which contains ingredients in mmol/l Na- 147, K-4.0, Ca - 2.3, Cl - 155, and HCO 3 - 1.2, is recommended to be used as a regulator of water-salt metabolism and acid-base composition.
  • Mafusol - a solution of salts (sodium chloride, potassium chloride and magnesium chloride) and sodium fumarate - is recommended to be used as the polyfunctional (complex) preparation.
  • the recommended concentration of blood substitute in solutions is 1%.
  • Example 1 Stable bovine blood, chilled to +2°+4° C, in 10-liter plastic containers, total amount 30 liters, is passed from the refrigerating chamber through the gateway to the industrial premises. Blood is fed into the receptacle of operating separator Al-FMC with the aid of a peristaltic pump. Separation is carried out at 4000 rpm. The resulting erythromass in the amount of 12 liters enters the hemolysis container.
  • a peristaltic pump is switched on for mixing, and 36 liters of water is added for injection (BIA) with a temperature of +6 to +8° C (temperature controlled by the sensor in the palletank) from the collection tank, located in the solutions preparation chamber. Hemolysis takes place within 40 minutes while stirring.
  • the resulting hemolysate is pumped over cartridge filters with a pore size of 50, 20, 10, 5, and 1 microns, placed sequentially, and then into the Flexel bio-bag to precipitate non-heme proteins.
  • the solution After filtration, the solution is fed into the bio-bag for the precipitation of non-heme proteins in the amount of 50 liters. After pumping the entire volume, concentrated
  • NaCl solution (33.3%) is fed into the container in an amount of 0.84 kg (BR.6). The precipitation lasts 30 minutes.
  • the hemoglobin solution is pumped to the pump cartridge filters with a pore size of 5, 1, and 0.65 microns, arranged sequentially, and subsequently into a container for the concentration of hemoglobin solution.
  • Purification of hemoglobin solution from high-molecular-weight admixtures in is at the ultrafiltration plant with membranes, filtering out material with a molecular mass of over 300 kDa. Concentration of the hemoglobin solution takes place at the ultrafiltration plant with membranes, splitting out materials with molecular mass of more than 70 kDa, to a concentration of 10% hemoglobin. A sterilizing filtration is performed on the same setup with the use of membranes with a pore size of 0.2 microns.
  • a solution of 2.5% glutaraldehyde in an amount of 1.83 kg is pumped to the reactor R1, which contains deoxyhemoglobin (TP.3.1.), for 40 min.
  • the reaction is carried out with stirring for 1 hour at a temperature of +6° to +8° C in a nitrogen flow.
  • the reaction is stopped using a solution of sodium borohydride added in the amount of 0.2 kg into the reactor with the polyhemoglobin solution. The reaction occurs for 30 minutes while stirring. Then the reaction mixture is pressure-pumped with nitrogen (excess pressure 0.5 - 1 atm) in the diafiltration container.
  • the reaction mixture is pressure-pumped with nitrogen (pressurized 0.5 - 1 atm.) from the bioreactor and is introduced into a 50-liter bio-bag. Thereafter, the polyhemoglobin solution is pumped via a replenishment pump for 300kDa diafiltration to remove the high-molecular weight compounds (of more than 6 molecules of hemoglobin). After diafiltration, 20 liters of the solution is fed to the replenishment pump for concentration and washing diafiltration at 1 00kDa. The solution is washed with 150 liters of water for injection, for removal of the modified hemoglobin (intramolecular bonded tetramer) and low molecular weight compounds, and concentrated to 20 liters.
  • nitrogen pressurized 0.5 - 1 atm.
  • the wash solution is directed to wastewater treatment plants.
  • Lyophilic or vacuum drying providing for the production of sterile powder in an amount of 4.8 kg is used for drying the preparation.
  • Treatment efficiency of the resulting blood substitute was evaluated on a model of hemorrhagic shock in dogs.
  • Sterile freeze-dried polyhemoglobin containing glucose and ascorbic acid was used for the study.
  • the powder was diluted with saline solution.
  • Ten mongrel dogs - males weighing 10-20 kg - were used for the experiment, which artificially induced hemorrhagic shock in acute blood loss with prolonged hypotension.
  • Estimated blood loss was 45 - 55 ml/kg, and the duration of hypotension at the level of blood pressure equal to 40 mm Hg. was 60 - 70 min.
  • Intravenous solution of polymerized glutaraldehyde-modified hemoglobin was introduced during the pronounced disorders of the systemic hemodynamics, oxygen transport and acid-base state of the body, caused by massive blood loss and prolonged hypotension.
  • the preparation obtained through the claimed method was introduced iat the same volume as the blood loss.

Landscapes

  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Public Health (AREA)
  • Chemical & Material Sciences (AREA)
  • Veterinary Medicine (AREA)
  • Medicinal Chemistry (AREA)
  • Animal Behavior & Ethology (AREA)
  • General Health & Medical Sciences (AREA)
  • Pharmacology & Pharmacy (AREA)
  • Epidemiology (AREA)
  • Hematology (AREA)
  • Bioinformatics & Cheminformatics (AREA)
  • Engineering & Computer Science (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Diabetes (AREA)
  • Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
  • General Chemical & Material Sciences (AREA)
  • Gastroenterology & Hepatology (AREA)
  • Immunology (AREA)
  • Proteomics, Peptides & Aminoacids (AREA)
  • Organic Chemistry (AREA)
  • Dermatology (AREA)
  • Medicines Containing Material From Animals Or Micro-Organisms (AREA)
  • Medicines That Contain Protein Lipid Enzymes And Other Medicines (AREA)
  • Acyclic And Carbocyclic Compounds In Medicinal Compositions (AREA)
  • Medicinal Preparation (AREA)
  • Pharmaceuticals Containing Other Organic And Inorganic Compounds (AREA)

Abstract

The invention relates to medicine, in particular to polyhemoglobin-based blood substitutes. The invention can be used for producing blood substituting solutions comparable in terms of a gas transportation efficiency (oxygen transfer) with human blood erythrocytes. The inventive oxygen-transferring blood substitute is based on the hemoglobin which is polymerised by glutaraldehyde produced from animal blood and differs in that it is in the form of a dry substance and contains not less than 90% of polymerised hemoglobin, the molecular mass of which ranges from 192 000 to 320 000 Da and the methemoglobin content in the blood substitute is equal to or less than 5%.

Description

  • The present invention relates to medicine, namely blood substitutes based on polyhemoglobin. The invention can be used for the production of blood-substituting solutions comparable to the efficiency of gas transport (transport of oxygen) with erythrocytes of human blood.
  • A blood substitute / L. R. Sehgal, A. L. Rosen, S. A. Gould, H.L. Sehgal, G.S. Moss / Transfusion. - 1983. - V. 23. - N 2. - P. 158-162 /, of polymeric hemoglobin, is widely known.
  • The main drawback of the known blood substitute is its relatively high cost, which is due to the fact that the blood substitute for use expensive biologically active agent - pyridoxal-b-phosphate (PF). There is also a danger of incidence of free-PF in the final product, which can lead to undesirable consequences.
  • The blood substitute Gelenpol, / RU 2132687 , A61 K35/18, A61 K38/42, 1999/, which is a mixture of hemoglobin tetramer and oligomers with various chain lengths, is also well-known. Oligomers are obtained by cross-linking the hemoglobin tetramers with glutaraldehyde and modified glutamic acid.
  • The disadvantage of Gelenpol is that packed red blood cells with a shelf life of no more than 36 days are required for its preparation, and this may adversely affect the stocks of donated blood.
  • The disadvantages also include the fact that the blood substitute has a large percentage of hemoglobin tetramer, which dissociates in the blood into dimers which have a nephrotoxic effect. The tetramer also causes vasoconstrictor effect by binding nitric oxide, and in addition, the tetramer is rapidly eliminated from the blood stream without being able to perform the gas-transport function.
  • The blood substitute according to patent RU 2203087 , derived from donated blood, is also well-known. This blood substitute is an aqueous solution piridoxilated, polymerized hemoglobin, which contains approximately 16% hemoglobin polymer with a molecular mass of approximately 128, approximately 26% hemoglobin polymer with a molecular mass of approximately 192, and approximately 58% hemoglobin polymer with a molecular weight of about 256. This blood substitute is prepared using carbon monoxide, which increases the cost and lengthens the process; moreover, there is an admixture of the toxic carboxyhemoglobin (up to 1.5%) in the final product. The described technology allows for the use of blood of other mammals, as confirmed by the authors.
  • The hemoglobin-based blood substitute made by the biopure company, including hemoglobin from the red blood cells of cattle, Patents US 5,084,558 (1992 ) and US 6,506,725 (2003 ), is also well-known.
  • This blood substitute has the following parameters: distribution of the molecular weight of the polyhemoglobin is in the range of 68,000 - 500,000 daltons, more than 90%, with the polyhemoglobin content more than 50%, methemoglobin content of less than 20%, and endotoxin content of less than 0.02 units/ml.
  • The disadvantages of this blood substitute are high levels of tetramer and methemoglobin. The high tetramer content has a nephrotoxic effect and methemoglobin is toxic. In addition, the blood substitute is prepared using degassed solution, and therefore when introduced into the organism in conditions of hemorrhagic shock, can bind to dissolved oxygen in the blood, causing additional hypoxia. Biopure's product is a ready-to-use product with a fixed concentration of hemoglobin in a defined medium (modified lactated Ringer - Locke solution). In this regard, the possibility of changing the concentration of hemoglobin in a solution is limited and a change in solvent composition is not possible. Meanwhile, there may be situations where the use of this solvent is not desirable and a plasma substitute with different properties and different hemoglobin may turn out to be optimal.
  • The present invention is to create a blood substitute devoid of these shortcomings.
  • In order to solve this problem, a blood substitute with oxygen transport function and based on polymerized glutaraldehyde hemoglobin derived from animal blood is proposed. A distinctive feature of the proposed blood substitute is that the molecular weight distribution of 90% of the polyhemoglobin is in the range of 192,000 - 320,000 Da and the methemoglobin content is less than 5%. The blood substitute is proposed to be made in the form of a dry substance, such as a powder or granules, with a moisture content of no more than 7%.
  • The proposed blood substitute may also contain glucose and/or ascorbic acid.
  • The distribution of molecular weight of 90% of polyhemoglobin in the range of 192,000 - 320,000 Da and methemoglobin content less than 5% improve the quality of the blood substitute by eliminating unwanted side effects. It is known that polymerized hemoglobin has less cooperative effect than native hemoglobin, which reduces the Hill coefficient /Preparation and integral vitro characteristics of polymerized pyridoxylated hemoglobin, L.R. Sehgalet al., TRANSFUSION, Vol. 23, No. 2-1983, p. 158 - 162/. This effect is possibly due to steric hindrance to access of oxygen to the heme. The distribution of molecular weight in the specified range can bring gas transport properties of the claimed blood substitute closer to that of native hemoglobin due to the greater access of heme to oxygen.
  • Administration of glucose allows the use of freeze-drying to produce dry product, and ascorbic acid increases the shelf life of the preparation.
  • Making blood substitute in the form of dry substance increases its shelf life and strengthens its anti-shock effect. In addition, it expands the set of specific therapeutic effects through the ability to dissolve it in one of the accompanying plasma substitute solutions. The choice of solution is determined by the cause that led to the need to transfuse blood substitute, the condition of the patient, and the nature of the proposed therapy (treatment process).
  • Consequently, the technical result is achieved.
  • The blood substitute is prepared using osmotic hemolysis of the red blood cells of cattle. Therefore, the erythrocytic mass derived from the stabilized cow's blood by separation, is subjected to hemolysis with water for injection. Stroma (erythrocyte membrane) is separated by microfiltration using filters with pore diameters of 50, 20, 10, 5, and 1 microns. The filtrate is treated with concentrated sodium chloride solution for planting non-heme proteins. The solution is again filtered through filters with pore diameters of 5, 1, and 0.65 microns and subjected to the process of ultrafiltration with 300 kDa cut-off membranes, and sterilizing filtration is performed.
  • The concentration of native hemoglobin and of the products of its chemical modification is determined spectrophotometrically by using a cyanmethemoglobin derivative at a wavelength of 540 Nm /M.S. Kushakovsky / Clinical forms of damage to the hemoglobin, Leningrad: Medicine, 1968. - p. 23 /. Reagent grade sodium chloride ("chemically pure," GOST 42-2572-88), glucose (FS 42-2419-86), ascorbic acid (HF X, S - 6), and isotonic solution (GF Xl, First edition, p. 175) are used.
  • Polymerization. 1-10 wt.% aqueous solution of hemoglobin is deoxygenated, and at a temperature of 4°-8° C, 1 - 5 wt.% aqueous solution of glutaraldehyde is added at a molar ratio of glutaraldehyde: hemoglobin (10: 1) - (20: 1).
  • The reaction is completed by adding an aqueous solution of sodium borohydride (pH 8-9).
  • The polyhemoglobin solution is subjected to ultrafiltration on cut-off membranes of 450 kDa, and then for concentration and diafiltration washing, it is applied to the membranes filtering out polymers that are less than 150 kDa. The polyhemoglobin solution is washed with diafiltration to remove the tetramer and low molecular weight compounds, and then it is concentrated up to 10% polyhemoglobin and stored for drying. The quality of the preparation in terms of compliance with the fractional composition of polyhemoglobin is controlled through electrophoresis and gel-permeation chromatography.
  • Among the preparations with hemodynamic (anti-shock) effect, polyoxidin, containing 1.5% solution of polyethylene glycol, with a molecular mass of 20 kDa in 0.9% sodium chloride solution with the addition of potassium iodide, is proposed as a solvent for the claimed blood substitute. Polyoxidin has an anti-shock effect, as well as the ability to cause autohemodilution and retain fluid in the bloodstream. Polyoxidin restores capillary blood flow with its disaggregating effect.
  • Hemodez, a 6% solution of polyvinylpyrrolidone with a molecular mass of 12.6 kDa, with the addition of salts balanced by ionic composition, is proposed to be used as a detoxication preparation.
  • Ringer's solution, which contains ingredients in mmol/l Na- 147, K-4.0, Ca - 2.3, Cl - 155, and HCO3 - 1.2, is recommended to be used as a regulator of water-salt metabolism and acid-base composition.
  • Mafusol - a solution of salts (sodium chloride, potassium chloride and magnesium chloride) and sodium fumarate - is recommended to be used as the polyfunctional (complex) preparation.
  • The recommended concentration of blood substitute in solutions is 1%.
  • Example 1. Stable bovine blood, chilled to +2°+4° C, in 10-liter plastic containers, total amount 30 liters, is passed from the refrigerating chamber through the gateway to the industrial premises. Blood is fed into the receptacle of operating separator Al-FMC with the aid of a peristaltic pump. Separation is carried out at 4000 rpm. The resulting erythromass in the amount of 12 liters enters the hemolysis container.
  • After introduction of 12 liters of erythromass in a disposable Flexel 3D bio-bag (E 1) for hemolysis with a volume of 50 liters (all tanks are equipped with cooling jacket), a peristaltic pump is switched on for mixing, and 36 liters of water is added for injection (BIA) with a temperature of +6 to +8° C (temperature controlled by the sensor in the palletank) from the collection tank, located in the solutions preparation chamber. Hemolysis takes place within 40 minutes while stirring.
  • The resulting hemolysate is pumped over cartridge filters with a pore size of 50, 20, 10, 5, and 1 microns, placed sequentially, and then into the Flexel bio-bag to precipitate non-heme proteins.
  • After filtration, the solution is fed into the bio-bag for the precipitation of non-heme proteins in the amount of 50 liters. After pumping the entire volume, concentrated
  • NaCl solution (33.3%) is fed into the container in an amount of 0.84 kg (BR.6). The precipitation lasts 30 minutes.
  • After the precipitation of non-heme proteins, the hemoglobin solution is pumped to the pump cartridge filters with a pore size of 5, 1, and 0.65 microns, arranged sequentially, and subsequently into a container for the concentration of hemoglobin solution.
  • Purification of hemoglobin solution from high-molecular-weight admixtures in is at the ultrafiltration plant with membranes, filtering out material with a molecular mass of over 300 kDa. Concentration of the hemoglobin solution takes place at the ultrafiltration plant with membranes, splitting out materials with molecular mass of more than 70 kDa, to a concentration of 10% hemoglobin. A sterilizing filtration is performed on the same setup with the use of membranes with a pore size of 0.2 microns.
  • After concentration, 23.5 liters of of the hemoglobin solution enters the gas-vortex reactor. A stream of sterile nitrogen is fed into the reactor (controlled by a rotameter), for intermixture and deoxygenation. Deoxygenation is carried out until oxygen concentration in the equilibrium gas phase of 1.0-2.0 vol. % is achieved (in the reactor is located the oxygen concentration sensor).
  • A solution of 2.5% glutaraldehyde in an amount of 1.83 kg is pumped to the reactor R1, which contains deoxyhemoglobin (TP.3.1.), for 40 min. The reaction is carried out with stirring for 1 hour at a temperature of +6° to +8° C in a nitrogen flow.
  • The reaction is stopped using a solution of sodium borohydride added in the amount of 0.2 kg into the reactor with the polyhemoglobin solution. The reaction occurs for 30 minutes while stirring. Then the reaction mixture is pressure-pumped with nitrogen (excess pressure 0.5 - 1 atm) in the diafiltration container.
  • The reaction mixture is pressure-pumped with nitrogen (pressurized 0.5 - 1 atm.) from the bioreactor and is introduced into a 50-liter bio-bag. Thereafter, the polyhemoglobin solution is pumped via a replenishment pump for 300kDa diafiltration to remove the high-molecular weight compounds (of more than 6 molecules of hemoglobin). After diafiltration, 20 liters of the solution is fed to the replenishment pump for concentration and washing diafiltration at 1 00kDa. The solution is washed with 150 liters of water for injection, for removal of the modified hemoglobin (intramolecular bonded tetramer) and low molecular weight compounds, and concentrated to 20 liters.
  • The wash solution is directed to wastewater treatment plants.
  • Sterile 40% glucose solution in the amount of 4.83 liters and 0.2 liters of 13,6% sterile solution of ascorbic acid is added into the bio-bag with the polyhemoglobin solution added through the sterile connection connector, and the solution is stirred. Then the prepared solution is fed through a peristaltic pump to the sterilizing filtration installation with a pore size of 0.22 microns. Filtrate enters the holding tank for delivery for drying.
  • Lyophilic or vacuum drying providing for the production of sterile powder in an amount of 4.8 kg is used for drying the preparation.
  • Comparable values of the Hill coefficient are listed in the following table:1. Table 1
    Hill coefficient native hemoglobin Biopure blood substitute The claimed blood substitute
    2.0 1.4 1.8
  • Treatment efficiency of the resulting blood substitute was evaluated on a model of hemorrhagic shock in dogs. Sterile freeze-dried polyhemoglobin containing glucose and ascorbic acid was used for the study. The powder was diluted with saline solution. Ten mongrel dogs - males weighing 10-20 kg - were used for the experiment, which artificially induced hemorrhagic shock in acute blood loss with prolonged hypotension. Estimated blood loss was 45 - 55 ml/kg, and the duration of hypotension at the level of blood pressure equal to 40 mm Hg. was 60 - 70 min. Intravenous solution of polymerized glutaraldehyde-modified hemoglobin was introduced during the pronounced disorders of the systemic hemodynamics, oxygen transport and acid-base state of the body, caused by massive blood loss and prolonged hypotension. The preparation obtained through the claimed method was introduced iat the same volume as the blood loss. Ten out of ten of the dogs in the study survived, wherein it was revealed that the infusion of the solution with a low concentration of polyhemoglobin (0.8g/dl) provides not only a persistent restoration of systemic hemodynamics, but also a higher level of tissue oxygen consumption.
  • When a preparation with the characteristics of the prototype in a similar experiment was used, nine out of the ten animals survived.

Claims (10)

  1. A blood substitute with oxygen transport function, based on glutaraldehyde-polymerized hemoglobin derived from animal blood, distinguished by the fact that it is a dry substance and contains at least 90% polymerized hemoglobin with molecular weight in the range of 192,000 - 320,000 Da and the methemoglobin content in the blood substitute no more than 5%.
  2. The blood substitute according to Claim 1, distinguished by the fact that it additionally contains glucose.
  3. The blood substitute of Claim 1, distinguished by the fact that it additionally contains ascorbic acid.
  4. The blood substitute according to Claim 1, distinguished by the fact that is a powder with a humidity no greater than 7%.
  5. The blood substitute according to Claim 4, wherein the granules have a moisture content of no greater than 7%.
  6. A pharmaceutical composition containing the blood substitute according to Claim 1 and polioxydin containing a 1.5% solution of polyethylene glycol with a molecular mass of 20 kDa in a 0.9% sodium chloride solution with the addition of potassium iodide.
  7. A pharmaceutical composition containing the blood substitute according to Claim 1, and a 6% solution of polyvinylpyrrolidone with a molecular mass of 12.6 kDa, with the addition of salts balanced in terms of ionic composition.
  8. A pharmaceutical composition containing the blood substitute according to Claim 1 and Ringer's solution.
  9. A pharmaceutical composition according to Claim 8, distinguished by the fact that the Ringer's solution contains Na -147, K - 4.0, Ca - 2.3, Cl - 155, and HCO3-1.2 mmol/l.
  10. A pharmaceutical composition containing the blood substitute according to Claim 1 and a solution of sodium chloride, potassium chloride and magnesium chloride and sodium fumarate.
EP09723300A 2008-03-18 2009-03-17 Oxygen-transferring blood substitute and a pharmaceutical composition (variants) Withdrawn EP2322207A4 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
RU2008109967/15A RU2361608C1 (en) 2008-03-18 2008-03-18 Blood substitute with function of oxygen transfer, pharmaceutical composition (versions)
PCT/RU2009/000129 WO2009116894A2 (en) 2008-03-18 2009-03-17 Oxygen-transferring blood substitute and a pharmaceutical composition (variants)

Publications (2)

Publication Number Publication Date
EP2322207A2 true EP2322207A2 (en) 2011-05-18
EP2322207A4 EP2322207A4 (en) 2012-04-18

Family

ID=41047006

Family Applications (1)

Application Number Title Priority Date Filing Date
EP09723300A Withdrawn EP2322207A4 (en) 2008-03-18 2009-03-17 Oxygen-transferring blood substitute and a pharmaceutical composition (variants)

Country Status (7)

Country Link
EP (1) EP2322207A4 (en)
CN (1) CN102026654A (en)
EA (1) EA017871B1 (en)
MY (1) MY169785A (en)
RU (1) RU2361608C1 (en)
UA (1) UA96390C2 (en)
WO (1) WO2009116894A2 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3072502A1 (en) * 2015-03-25 2016-09-28 Universitätsmedizin der Johannes Gutenberg-Universität Mainz Rheological blood replacement solution and uses thereof
WO2019070086A3 (en) * 2017-09-20 2019-06-13 RIM, Chang Ho Oxygen carrying blood substitute obtained from swine blood and the manufacturing method thereof

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106237314A (en) * 2016-08-30 2016-12-21 中国科学院长春应用化学研究所 A kind of resuscitation fluid being applied to house pet hemorrhagic shock first aid and preparation method thereof
WO2020080978A2 (en) * 2018-10-19 2020-04-23 Рахимджан Ахметджанович РОЗИЕВ Method for producing a blood substitute for use in veterinary medicine
WO2023022626A1 (en) * 2021-08-19 2023-02-23 Рахимджан Ахметджанович РОЗИЕВ Use of polymerized haemoglobin to increase the efficacy of chemotherapy in the treatment of malignant tumours
WO2023022625A1 (en) * 2021-08-19 2023-02-23 Рахимджан Ахметджанович РОЗИЕВ Use of polymerized haemoglobin for mobilizing reservoir blood in the case of haemorrhage
CN114146165B (en) * 2021-12-02 2022-08-12 润方(北京)生物医药研究院有限公司 Application of a kind of polymerized hemoglobin in the preparation of medicine for preventing and treating respiratory failure
CN116059324A (en) * 2023-03-22 2023-05-05 润方(北京)生物科技有限公司 Hemoglobin oxygen carrier freeze-dried powder injection, preparation method and application thereof

Family Cites Families (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5464814A (en) * 1986-06-20 1995-11-07 Northfield Laboratories, Inc. Acellular red blood cell substitute
US5084558A (en) * 1987-10-13 1992-01-28 Biopure Corporation Extra pure semi-synthetic blood substitute
CA1312009C (en) * 1986-11-10 1992-12-29 Carl W. Rausch Extra pure semi-synthetic blood substitute
PL187923B1 (en) * 1996-03-28 2004-11-30 Northfield Lab Method of and apparatus for obtaining a cell-less substitute of erythrocytes
RU2132687C1 (en) * 1996-04-23 1999-07-10 Институт высомолекулярных соединений РАН Method of preparing polyhemoglobin showing enhanced oxygen-transporting effectiveness
RU2162707C2 (en) * 1999-03-24 2001-02-10 Российский научно-исследовательский институт гематологии и трансфузиологии Blood substitute as oxygen transporter, composition for its preparing and method of polymeric modified hemoglobin preparing
CA2499459A1 (en) * 2002-10-03 2004-05-06 Northfield Laboratories, Inc. Polymerized hemoglobin solution for treating patients with massive blood loss
JP2006516994A (en) * 2003-01-29 2006-07-13 ノースフィールド ラボラトリーズ、インコーポレイテッド Polymerized hemoglobin solution with reduced tetramer content and method for preparation

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3072502A1 (en) * 2015-03-25 2016-09-28 Universitätsmedizin der Johannes Gutenberg-Universität Mainz Rheological blood replacement solution and uses thereof
WO2016150909A1 (en) * 2015-03-25 2016-09-29 Universitätsmedizin Der Johannes Gutenberg-Universität Mainz Rheological blood replacement solution and uses thereof
WO2019070086A3 (en) * 2017-09-20 2019-06-13 RIM, Chang Ho Oxygen carrying blood substitute obtained from swine blood and the manufacturing method thereof

Also Published As

Publication number Publication date
WO2009116894A3 (en) 2009-12-23
UA96390C2 (en) 2011-10-25
EP2322207A4 (en) 2012-04-18
EA017871B1 (en) 2013-03-29
RU2361608C1 (en) 2009-07-20
MY169785A (en) 2019-05-15
EA201001469A1 (en) 2011-02-28
CN102026654A (en) 2011-04-20
WO2009116894A2 (en) 2009-09-24

Similar Documents

Publication Publication Date Title
CA1298783C (en) Acellular red blood cell substitute
US6552173B2 (en) Acellular red blood cell substitute
RU2361608C1 (en) Blood substitute with function of oxygen transfer, pharmaceutical composition (versions)
KR100964604B1 (en) Composition and method for oxygen delivery comprising modified hemoglobin with high oxygen affinity
JPS632975B2 (en)
US7521417B2 (en) Method and apparatus for preparing an acellular red blood cell substitute
JPH0365326B2 (en)
AU2002250229B2 (en) Manufacture of a hemoglobin-based oxygen carrier
US6956025B2 (en) Mammalian haemoglobin compatible with blood plasma, cross-linked and conjugated with polyalkylene oxides as artificial medical oxygen carriers, production and use thereof
WO1991009615A1 (en) Polyhemoglobin stabilized by purine derivatives and glutathione
RU2340354C1 (en) Blood substitute with function of oxygen transfer
Dimino et al. High O2 affinity hemoglobin‐based oxygen carriers synthesized via polymerization of hemoglobin with ring‐opened 2‐chloroethyl‐β‐D‐fructopyranoside and 1‐o‐octyl‐β‐D‐glucopyranoside
EP0586381B1 (en) Improved blood substitute
KR100562762B1 (en) Method and apparatus for manufacturing acellular erythrocyte replacement

Legal Events

Date Code Title Description
PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

Free format text: ORIGINAL CODE: 0009012

17P Request for examination filed

Effective date: 20110105

AK Designated contracting states

Kind code of ref document: A2

Designated state(s): AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO SE SI SK TR

AX Request for extension of the european patent

Extension state: AL BA RS

DAX Request for extension of the european patent (deleted)
A4 Supplementary search report drawn up and despatched

Effective date: 20120316

RIC1 Information provided on ipc code assigned before grant

Ipc: A61P 7/00 20060101ALI20120312BHEP

Ipc: C07K 14/805 20060101ALI20120312BHEP

Ipc: A61K 38/42 20060101AFI20120312BHEP

17Q First examination report despatched

Effective date: 20121024

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWN

18D Application deemed to be withdrawn

Effective date: 20130305